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Studies on Initialization for Multilayer Networks

机译:多层网络初始化研究

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摘要

This paper proposes an initialization of back propagation (BP) network for pattern classification problems; the weights of hidden units are initialized so that hyperplanes should pass through the center of input pattern set, and those of the output layer are initialized to zero. Several simulation results confirm that the proposed initialization gives better convergence than the ordinary initialization that all the weights are initialized by uniform random values with zero mean.
机译:针对模式分类问题,本文提出了一种反向传播(BP)网络的初始化方法。隐藏单元的权重被初始化,以便超平面应通过输入模式集的中心,而输出层的权重被初始化为零。若干仿真结果证实,与所有初始权均由均值为零的均匀随机值初始化的普通初始化相比,所提出的初始化具有更好的收敛性。

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